Literature DB >> 30141638

Fast and Unconditional All-Microwave Reset of a Superconducting Qubit.

P Magnard1, P Kurpiers1, B Royer2, T Walter1, J-C Besse1, S Gasparinetti1, M Pechal1, J Heinsoo1, S Storz1, A Blais2,3, A Wallraff1.   

Abstract

Active qubit reset is a key operation in many quantum algorithms, and particularly in quantum error correction. Here, we experimentally demonstrate a reset scheme for a three-level transmon artificial atom coupled to a large bandwidth resonator. The reset protocol uses a microwave-induced interaction between the |f,0⟩ and |g,1⟩ states of the coupled transmon-resonator system, with |g⟩ and |f⟩ denoting the ground and second excited states of the transmon, and |0⟩ and |1⟩ the photon Fock states of the resonator. We characterize the reset process and demonstrate reinitialization of the transmon-resonator system to its ground state in less than 500 ns and with 0.2% residual excitation. Our protocol is of practical interest as it has no additional architectural requirements beyond those needed for fast and efficient single-shot readout of transmons, and does not require feedback.

Year:  2018        PMID: 30141638     DOI: 10.1103/PhysRevLett.121.060502

Source DB:  PubMed          Journal:  Phys Rev Lett        ISSN: 0031-9007            Impact factor:   9.161


  2 in total

1.  Removing leakage-induced correlated errors in superconducting quantum error correction.

Authors:  M McEwen; D Kafri; Z Chen; J Atalaya; K J Satzinger; C Quintana; P V Klimov; D Sank; C Gidney; A G Fowler; F Arute; K Arya; B Buckley; B Burkett; N Bushnell; B Chiaro; R Collins; S Demura; A Dunsworth; C Erickson; B Foxen; M Giustina; T Huang; S Hong; E Jeffrey; S Kim; K Kechedzhi; F Kostritsa; P Laptev; A Megrant; X Mi; J Mutus; O Naaman; M Neeley; C Neill; M Niu; A Paler; N Redd; P Roushan; T C White; J Yao; P Yeh; A Zalcman; Yu Chen; V N Smelyanskiy; John M Martinis; H Neven; J Kelly; A N Korotkov; A G Petukhov; R Barends
Journal:  Nat Commun       Date:  2021-03-19       Impact factor: 14.919

2.  Error rate reduction of single-qubit gates via noise-aware decomposition into native gates.

Authors:  Thomas J Maldonado; Johannes Flick; Stefan Krastanov; Alexey Galda
Journal:  Sci Rep       Date:  2022-04-16       Impact factor: 4.996

  2 in total

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